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I have two trees (paths), defined by a node like

trait Node {
  def getParent : Node
  def op(n:Node)
}

and I want to travel two nodes up until the parent is null in parallel like:

Pseudo:

def simultanousUp(/*var*/ a:Node,/*var*/ b:Node) = 
     while(a != null) {
          a.op(b); 
          a = a.getParent;
          b = if(b!=null) b.getParent else null /*or throw somthing*/;
      }

Question: is there a more elegant and/or performant way in scala to do this?

To avoid misunderstandings: its not a question about concurrent execution!

share|improve this question
    
Since that pseudo doesn't work (no var in method arguments!), I'm not sure what you mean about "more elegant". –  Rex Kerr Jan 29 '13 at 18:36
    
^^ Thats one of the points ;) –  cybye Jan 29 '13 at 18:37

3 Answers 3

up vote 3 down vote accepted
@annotation.tailrec final def simultaneousUp(a: Node, b: Node) {
  if (a != null && b != null) {
    a op b
    simultaneousUp(a.getParent, b.getParent)
  }
  // Throw exception or whatever on mismatched lengths?
}
share|improve this answer
    
make it final ;) –  cybye Jan 29 '13 at 19:05
    
changed it slightly to simultaneousUp (a.getParent, if (b!=null) b.getParent else null) in the tailrec. Thanks for this elegant solution! –  cybye Jan 29 '13 at 19:18
    
@cybye - If op allows a null argument, probably also want to have only (a != null). Otherwise the change won't ever matter as you'll never be there with b==null. –  Rex Kerr Jan 29 '13 at 19:27
    
yes, i changed that too but wanted keep the comment short. thanks again. –  cybye Jan 29 '13 at 19:39
    
null in scala is clearly code smell. –  jwinandy Jan 30 '13 at 10:04

The parent cannot be null.

At first, let's be correct :

trait Node {
  def parent : Option[Node]
  def op(n:Node) // what does op mean ? what is the return type of op ? 
                 //cannot be Unit
}

then

@scala.annotation.tailrec 
//it makes sure it's tailrec, so it can be optimized
def simultanousUp(a:Node, b:Node): (Node,Node) = {
      a.op(b)
      (a.parent, b.parent) match {
          case (Some(pa), Some(pb)) => simultanousUp(pa,pb)
          case _ => (a,b)
      }

}
share|improve this answer
    
that looks good .. –  cybye Jan 29 '13 at 18:53
    
Safe but lower-performance. Safety is probably more important. Three object creations will take ~10-20 ns on most modern machines when the JVM's memory is not already heavily taxed. –  Rex Kerr Jan 29 '13 at 19:03

If op is a simple operation, you can't efficiently run it parallel, because traversing will consume significant time.

If op is a more complex (i.e. time consuming) operation, you can do it in parallel. However, you need to convert it to ParVector or something similar first.


I don't think there is a more performant way of traversing it. There is however a more elegant (but probably not so performant) solution by Stream:

def pathTo(start: Node): Stream[Node] = start.getParent match{
    case null => Stream.empty
    case nextPoint => Stream.cons(start, pathTo(nextPoint))
}
share|improve this answer
    
solve the problem of ancestor path, but since your nodes are mutables, you are lucky if it works. –  jwinandy Jan 29 '13 at 18:51
    
So, you are traversing it while it is being mutated, aren't you?If so, you have to choose one state at which you perform the computation. –  v6ak Jan 29 '13 at 21:41

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